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A Comprehensive Analysis of Fermi Gamma-Ray Burst Data. IV. Spectral Lag and its Relation to E p Evolution

机译:费米伽马射线爆裂数据的综合分析。 IV。光谱滞后及其与E p演化的关系

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The spectral evolution and spectral lag behavior of 92 bright pulses from 84 gamma-ray bursts observed by the Fermi Gamma-ray Burst Monitor (GBM) telescope are studied. These pulses can be classified into hard-to-soft pulses (H2S; 64/92), H2S-dominated-tracking pulses (21/92), and other tracking pulses (7/92). We focus on the relationship between spectral evolution and spectral lags of H2S and H2S-dominated-tracking pulses. The main trend of spectral evolution (lag behavior) is estimated with (), where E p is the peak photon energy in the radiation spectrum, t?+?t 0 is the observer time relative to the beginning of pulse ?t 0, and is the spectral lag of photons with energy E with respect to the energy band 8–25?keV. For H2S and H2S-dominated-tracking pulses, a weak correlation between and k E is found, where W is the pulse width. We also study the spectral lag behavior with peak time of pulses for 30 well-shaped pulses and estimate the main trend of the spectral lag behavior with . It is found that is correlated with k E . We perform simulations under a phenomenological model of spectral evolution, and find that these correlations are reproduced. We then conclude that spectral lags are closely related to spectral evolution within the pulse. The most natural explanation of these observations is that the emission is from the electrons in the same fluid unit at an emission site moving away from the central engine, as expected in the models invoking magnetic dissipation in a moderately high-σ outflow.
机译:研究了费米伽马射线爆裂监测仪(GBM)望远镜观测到的来自84个伽马射线爆发的92个亮脉冲的光谱演化和光谱滞后行为。这些脉冲可以分为难以控制的脉冲(H2S; 64/92),H2S为主的跟踪脉冲(21/92)和其他跟踪脉冲(7/92)。我们专注于H2S和H2S为主的跟踪脉冲的光谱演化与光谱滞后之间的关系。光谱演化的主要趋势(滞后行为)用()估算,其中E p是辐射光谱中的峰值光子能量,t?+?t 0是相对于脉冲开始的?t 0的观察者时间,以及是能量为E的光子相对于8-25?keV能带的光谱滞后。对于H2S和H2S为主的跟踪脉冲,发现与k E之间存在弱相关性,其中W是脉冲宽度。我们还研究了30个波形良好的脉冲的峰值时间的频谱滞后行为,并估计了的频谱滞后行为的主要趋势。发现与k E相关。我们在频谱演化的现象模型下执行模拟,发现这些相关性得到了再现。然后我们得出结论,频谱滞后与脉冲内的频谱演化密切相关。这些观察结果的最自然的解释是,发射来自远离中央发动机的发射位置处同一流体单元中的电子,这是模型在中等高σ流出时调用磁耗的模型所期望的。

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